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首页> 外文期刊>Antioxidants and redox signalling >Folding of conotoxins: formation of the native disulfide bridges during chemical synthesis and biosynthesis of conus peptides.
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Folding of conotoxins: formation of the native disulfide bridges during chemical synthesis and biosynthesis of conus peptides.

机译:芋螺毒素的折叠:在化学合成和圆锥肽生物合成过程中形成天然的二硫键。

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摘要

Conopeptides from >700 species of predatory marine Conus snails provide an impressive molecular diversity of cysteine-rich peptides. Most of the estimated 50,000-100,000 distinct conopeptides range in size from 10 to 50 amino acid residues, often with multiple posttranslational modifications. The great majority contain from two to four disulfide bridges. As the biosynthetic and chemical production of this impressive repertoire of disulfide-rich peptides has been investigated, particularly the formation of native disulfide bridges, differences between in vivo and in vitro oxidative folding have become increasingly evident. In this article, we provide an overview of the molecular diversity of conotoxins with an emphasis on the cysteine patterns and disulfide frameworks. The conotoxin folding studies reviewed include regioselective and direct oxidation strategies, recombinant expression, optimization of folding methods, mechanisms of in vitro folding, and preliminary data on the biosynthesis of conotoxinsin venom ducts. Despite these studies, how the cone snails efficiently produce properly folded conotoxins remains unanswered. As chemists continue to master oxidative folding techniques, insights gleaned from how conotoxins are folded in vivo will likely lead to the development of the new folding methods, as well as shed some light on fundamental mechanisms relevant to the protein folding problem.
机译:来自700多种掠食性海洋Conus蜗牛的Conopepteptides提供了令人印象深刻的富含半胱氨酸肽的分子多样性。估计的50,000-100,000个不同的conopepteptes中,大多数的大小在10至50个氨基酸残基之间,通常具有多个翻译后修饰。绝大多数包含二至四个二硫键。由于已经研究了这种令人印象深刻的富含二硫键的肽库的生物合成和化学生产,尤其是天然二硫键的形成,因此体内和体外氧化折叠之间的差异变得越来越明显。在本文中,我们提供了芋螺毒素分子多样性的概述,重点是半胱氨酸模式和二硫键框架。审查的毒素的折叠研究包括区域选择性和直接氧化策略,重组表达,折叠方法的优化,体外折叠的机制以及有关毒素在毒液管中生物合成的初步数据。尽管有这些研究,锥体蜗牛如何有效地产生适当折叠的芋螺毒素仍未得到答案。随着化学家继续掌握氧化折叠技术,从体内毒素折叠方法中获得的见解很可能会导致新折叠方法的发展,并为与蛋白质折叠问题相关的基本机制提供一些启示。

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